EP2446425B1 - Electronique pour un appareil commercial de préparation d'aliments congelés - Google Patents
Electronique pour un appareil commercial de préparation d'aliments congelés Download PDFInfo
- Publication number
- EP2446425B1 EP2446425B1 EP10823915.3A EP10823915A EP2446425B1 EP 2446425 B1 EP2446425 B1 EP 2446425B1 EP 10823915 A EP10823915 A EP 10823915A EP 2446425 B1 EP2446425 B1 EP 2446425B1
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- European Patent Office
- Prior art keywords
- cup
- food preparation
- size
- carriage
- chamber
- Prior art date
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- 235000013611 frozen food Nutrition 0.000 title 1
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- 235000013305 food Nutrition 0.000 claims description 38
- 238000002156 mixing Methods 0.000 description 15
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Images
Classifications
-
- A—HUMAN NECESSITIES
- A47—FURNITURE; DOMESTIC ARTICLES OR APPLIANCES; COFFEE MILLS; SPICE MILLS; SUCTION CLEANERS IN GENERAL
- A47J—KITCHEN EQUIPMENT; COFFEE MILLS; SPICE MILLS; APPARATUS FOR MAKING BEVERAGES
- A47J43/00—Implements for preparing or holding food, not provided for in other groups of this subclass
- A47J43/04—Machines for domestic use not covered elsewhere, e.g. for grinding, mixing, stirring, kneading, emulsifying, whipping or beating foodstuffs, e.g. power-driven
- A47J43/044—Machines for domestic use not covered elsewhere, e.g. for grinding, mixing, stirring, kneading, emulsifying, whipping or beating foodstuffs, e.g. power-driven with tools driven from the top side
-
- A—HUMAN NECESSITIES
- A23—FOODS OR FOODSTUFFS; TREATMENT THEREOF, NOT COVERED BY OTHER CLASSES
- A23G—COCOA; COCOA PRODUCTS, e.g. CHOCOLATE; SUBSTITUTES FOR COCOA OR COCOA PRODUCTS; CONFECTIONERY; CHEWING GUM; ICE-CREAM; PREPARATION THEREOF
- A23G9/00—Frozen sweets, e.g. ice confectionery, ice-cream; Mixtures therefor
- A23G9/04—Production of frozen sweets, e.g. ice-cream
- A23G9/045—Production of frozen sweets, e.g. ice-cream of slush-ice, e.g. semi-frozen beverage
-
- A—HUMAN NECESSITIES
- A23—FOODS OR FOODSTUFFS; TREATMENT THEREOF, NOT COVERED BY OTHER CLASSES
- A23G—COCOA; COCOA PRODUCTS, e.g. CHOCOLATE; SUBSTITUTES FOR COCOA OR COCOA PRODUCTS; CONFECTIONERY; CHEWING GUM; ICE-CREAM; PREPARATION THEREOF
- A23G9/00—Frozen sweets, e.g. ice confectionery, ice-cream; Mixtures therefor
- A23G9/04—Production of frozen sweets, e.g. ice-cream
- A23G9/20—Production of frozen sweets, e.g. ice-cream the products being mixed with gas, e.g. soft-ice
-
- A—HUMAN NECESSITIES
- A23—FOODS OR FOODSTUFFS; TREATMENT THEREOF, NOT COVERED BY OTHER CLASSES
- A23G—COCOA; COCOA PRODUCTS, e.g. CHOCOLATE; SUBSTITUTES FOR COCOA OR COCOA PRODUCTS; CONFECTIONERY; CHEWING GUM; ICE-CREAM; PREPARATION THEREOF
- A23G9/00—Frozen sweets, e.g. ice confectionery, ice-cream; Mixtures therefor
- A23G9/04—Production of frozen sweets, e.g. ice-cream
- A23G9/22—Details, component parts or accessories of apparatus insofar as not peculiar to a single one of the preceding groups
- A23G9/28—Details, component parts or accessories of apparatus insofar as not peculiar to a single one of the preceding groups for portioning or dispensing
-
- B—PERFORMING OPERATIONS; TRANSPORTING
- B01—PHYSICAL OR CHEMICAL PROCESSES OR APPARATUS IN GENERAL
- B01F—MIXING, e.g. DISSOLVING, EMULSIFYING OR DISPERSING
- B01F27/00—Mixers with rotary stirring devices in fixed receptacles; Kneaders
- B01F27/80—Mixers with rotary stirring devices in fixed receptacles; Kneaders with stirrers rotating about a substantially vertical axis
-
- B—PERFORMING OPERATIONS; TRANSPORTING
- B01—PHYSICAL OR CHEMICAL PROCESSES OR APPARATUS IN GENERAL
- B01F—MIXING, e.g. DISSOLVING, EMULSIFYING OR DISPERSING
- B01F27/00—Mixers with rotary stirring devices in fixed receptacles; Kneaders
- B01F27/80—Mixers with rotary stirring devices in fixed receptacles; Kneaders with stirrers rotating about a substantially vertical axis
- B01F27/805—Mixers with rotary stirring devices in fixed receptacles; Kneaders with stirrers rotating about a substantially vertical axis wherein the stirrers or the receptacles are moved in order to bring them into operative position; Means for fixing the receptacle
-
- B—PERFORMING OPERATIONS; TRANSPORTING
- B08—CLEANING
- B08B—CLEANING IN GENERAL; PREVENTION OF FOULING IN GENERAL
- B08B3/00—Cleaning by methods involving the use or presence of liquid or steam
- B08B3/02—Cleaning by the force of jets or sprays
-
- B—PERFORMING OPERATIONS; TRANSPORTING
- B08—CLEANING
- B08B—CLEANING IN GENERAL; PREVENTION OF FOULING IN GENERAL
- B08B9/00—Cleaning hollow articles by methods or apparatus specially adapted thereto
-
- B—PERFORMING OPERATIONS; TRANSPORTING
- B65—CONVEYING; PACKING; STORING; HANDLING THIN OR FILAMENTARY MATERIAL
- B65D—CONTAINERS FOR STORAGE OR TRANSPORT OF ARTICLES OR MATERIALS, e.g. BAGS, BARRELS, BOTTLES, BOXES, CANS, CARTONS, CRATES, DRUMS, JARS, TANKS, HOPPERS, FORWARDING CONTAINERS; ACCESSORIES, CLOSURES, OR FITTINGS THEREFOR; PACKAGING ELEMENTS; PACKAGES
- B65D85/00—Containers, packaging elements or packages, specially adapted for particular articles or materials
- B65D85/70—Containers, packaging elements or packages, specially adapted for particular articles or materials for materials not otherwise provided for
- B65D85/804—Disposable containers or packages with contents which are mixed, infused or dissolved in situ, i.e. without having been previously removed from the package
- B65D85/816—Disposable containers or packages with contents which are mixed, infused or dissolved in situ, i.e. without having been previously removed from the package into which liquid is added and the resulting preparation is retained, e.g. cups preloaded with powder or dehydrated food
-
- B—PERFORMING OPERATIONS; TRANSPORTING
- B01—PHYSICAL OR CHEMICAL PROCESSES OR APPARATUS IN GENERAL
- B01F—MIXING, e.g. DISSOLVING, EMULSIFYING OR DISPERSING
- B01F2101/00—Mixing characterised by the nature of the mixed materials or by the application field
- B01F2101/06—Mixing of food ingredients
- B01F2101/13—Mixing of ice-cream ingredients
Definitions
- This invention relates generally to food preparation and more specifically to instant preparation of frozen solids by blending in cups or similar vessels.
- Milkshakes and other beverages or foods are a desirable offering for convenience stores or other retail formats.
- An apparatus in a convenience store that serves on-the-go consumers prepares a beverage, e.g. a milkshake, by blending the ingredients in a cup containing the frozen ingredients.
- a consumer may directly choose the type or flavor to be prepared and insert it into the apparatus, which with the press of a button will then provide the finished product, e.g. the blended milkshake, at the desired consistency, to the consumer.
- US-A1-2005/0201198 discloses a food preparation apparatus in accordance with the preamble of claim 1, comprising a food preparation chamber a carriage comprising a cup holder, a boring blade coupled to a drive shaft and a cup lid weight to which the drive shaft passes and which can be used in particular for preparing semi-frozen food products and/or beverages from pre-prepared cups of frozen product; and US-A1-2008/0164274 discloses a dispensing system including the possibility of sensing the size of a cup that is placed within a cup holder.
- a food preparation apparatus comprising: a food preparation chamber; a carriage comprising a cup holder arranged for holding a cup containing food; a position motor arranged to elevate the carriage, cup holder and cup into the preparation chamber from a starting position and to return the carriage, cup holder and cup to the starting position, and the apparatus being arranged to maintain the carriage at the starting position outside of the chamber when awaiting a cup to be placed in the cup holder by a user of the apparatus; and characterized by: a system arranged to sense the size of a cup that is placed within the cup holder by the user, the system comprising: a position encoder on the position motor, and one or more cup size sensors, wherein the cup size is determined by referencing by way of the position encoder the position of the carriage, and thus the distance moved upwardly by the carriage from the start position, at a time when the one or more cup size sensors is tripped by the top of the cup to determine the cup size.
- FIG. 1A is a perspective view of apparatus 100 in an initial "cup down” position
- FIG. 1B is another perspective view of apparatus 100 in a subsequent “cup up” position.
- Apparatus 100 will prepare the frozen ingredients in cup 112 for consumption by a user.
- User interface 120 comprises a large video screen 120 which conveys information including product availability and features.
- a microprocessor (not shown) controls the operation of the various components of apparatus 100, including the video screen.
- a user may select a desired consistency level of a milkshake, for example, regular, less thick or more thick by pushing a push button on the control panel 110.
- such function can be incorporated into the user interface screen 120 as a touchscreen.
- a cup carriage 108 comprises carriage arms 108A and cup holder 108B, that travels in a vertical direction along guide rail or track (not shown).
- Various components within housing 104 of apparatus 100 will be described in relation to the flow charts of FIGS. 2 and 3 illustrating aspects of operation of apparatus 100, which should be viewed in conjunction with FIGS. 4A-8C .
- Product preparation cycle 200 is initiated by a user through the control panel 110 push buttons or the touch screen of user interface 120 after the user has placed the frozen cup in the cup holder.
- the user may select the desired consistency, as represented by step 206.
- apparatus 100 detects the placement of the product cup in the cup holder. As seen in FIG. 4C , the placement or presence of the cup 112 in the holder is detected when cup sensing beam 155 is interrupted. Cup sensing beam is generated by transmitter 160A and received by receiver 160B. When the beam is interrupted, a cup is determined to be present in the cup holder. While in some embodiments the location of the transmitter and receiver may be the opposite of that shown in FIG.
- the receiver is preferably at the upper location as it is partially shielded from ambient light by housing 104. This is advantageous because in some lighting conditions false cup present detection may occur and this is thus avoided with the transmitter/receiver layout and geometry shown in FIG. 4C .
- the cup will then be elevated up into the sealed chamber in step 210 so that the frozen contents may be bored while warm water is injected into the cup.
- the cup size Prior to blending, the cup size will be sensed in step 212.
- the carriage is moved up and down by a position motor 172 and a toothed belt system.
- An encoder 176 on position motor 172 is used to determine the position of the carriage 108A and cup holder 108B.
- This position, together with cup size sensors 164A and 164B, shown in FIG. 4D is used to determine the cup size.
- One of sensors 164A is a transmitter while the other is a receiver. When a through beam travelling from transmitter to receiver is interrupted, a cup is detected.
- a larger and thus taller cup will extend higher up from the cup holder 108B/carriage 108A and thus interrupt the through beam sensors 164A and 164B before a shorter cup.
- the boring time and/or amount or temperature of water may be varied with cup size to arrive at the desired consistency.
- the cup height may also be used to determine if an appropriate or authorized product is in the cup holder. If the height does not match a predetermined authorized height the cycle may be aborted or the user may be notified of such an error via the touch screen. Alternatively an RFID chip or a bar code or some other unique markings or image on the cup may be scanned to determine cup size and/or authorization.
- Such authorization/verification also prevents damage to the apparatus and ensures the safety of the user because an odd object may easily be destroyed by boring blade 150 shown in FIG. 5A (which will be described later) and result in potential damage to the apparatus or injury to those nearby.
- the position as determined by the position motor 172 and encoder 176 is redundantly verified. This is beneficial because the position motor moves the carriage via a toothed belt. If the belt slips or skips a position on the belt, the position motor and encoder may indicate an erroneous position, which is undesirable and potentially dangerous. For example, if the cup is not in the raised position (appropriate for each size of cup) so that the cup lid weight is not resting upon the top of the cup, but is instead resting on the support pins of the drive shaft, the cup lid weight may spin at several hundred RPM as the product is bored and create severe vibration (similar to an unbalanced washing machine) due to the unbalanced lid weight.
- sensors 180A and 180B are through beam sensors and when the beam is blocked by the flag of the carriage it is known that the carriage is between an emitter and collector of the through beam sensor.
- sensors 180A and 180B may have one dual purpose emitter/collector on one side of the flag, and when the signal is reflected by the flag the carriage is detected at the location of the sensor.
- sensors 180A and 180B can be simple switches contacted and tripped by the flag.
- step 218 the apparatus injects the proper amount of heated water and bores through the frozen product to achieve the selected consistency.
- the cup lid weight 130 which will be described later in more detail with regard to FIGS. 5-7 , is rotated as heated water is sprayed by nozzles 330C and 330D, as shown in FIG. 8C , above and below the cup lid weight at opposite sides of the cup lid weight to clean all of the food contact surfaces.
- the food contact surfaces e.g. blade 150 and cup lid weight 130 in the illustrative embodiments
- the nozzles cannot be in the trajectory of the cup as it travels vertically in the sealed chamber, and thus cannot be directly under the blade 150, which complicates the cleaning process, as will be discussed in greater detail below.
- Embodiments functioning in accordance with the flow chart of FIG. 3 and as depicted in the associated figures eliminate the need for regular human intervention and for stocking a sanitizer that needs to be replaced, which is advantageous for installations where such milkshakes and other frozen beverages are made, such as convenience stores.
- step 230 the elapsed time since the last product cycle completion is monitored. If a threshold time is not exceeded, monitoring will continue. If on the other hand, as seen in step 234, the threshold time has been met or exceeded, in step 238 a first rotary nozzle will be fired with a short burst of water pumped from an accumulator reservoir.
- the threshold is on the order of 10-60 minutes and in one example is 15 minutes.
- the first rotary nozzle may be either of front rotary nozzle 330A or rear rotary nozzle 330B seen in FIGS. 8A-8C .
- a very high flow rate of water greater than 11.34 litres (3 gallons) per minute, for example 15.12 litres (4 gallons) per minute, for a short time, for some 1-5 seconds, e.g. about 1.5 seconds from each rotary nozzle firing.
- the rotary nozzles are capable of dispensing a large quantity of water in a short time, sufficient volume of water at sufficient pressure is typically unavailable at the blender's water supply input 300 due to restrictions and filters on the supply line upstream of the apparatus. Therefore an accumulator tank 304 and a rotary pump 308 are used to increase the supply and pressure of water for the rotary nozzles to function more effectively.
- the increase in water pressure over input pressure is approximately 344.5-689 kPa (50-100 p.s.i.), allowing for both a large flow in a short period and for high pressure rinsing.
- accumulators are typically used at the output side of a pump
- accumulator 304 is located at the input to pump 308 in certain embodiments, although in other embodiments it may be at the output. This placement of the accumulator before the pump eliminates the susceptibility of the system to loss of pressure by the accumulator pressure bladder.
- the accumulator is simply serving as an inexpensive and readily available reservoir from which the pump can pump water at a high rate until the accumulator is exhausted.
- the accumulator When the pump is turned off, the accumulator is refilled with water at a slower rate by the pressure of the water supply line. In this manner, the accumulator is never relied upon to provide pressure to push water through the rotary nozzles.
- the more typical arrangement with an accumulator is to have the accumulator's bladder pressurized so that when water is to be released from the accumulator by opening a valve downstream, the pressurized bladder pushes the water out. The valve is then closed and the accumulator is then recharged by a pump that is located upstream of the accumulator.
- accumulator 304 is refilled in step 242 and then the second rotary nozzle, e.g. 330A or 330B, is fired (by a valve of manifold 316 under control of a system microprocessor) with a short burst of water pumped from the accumulator reservoir. Then in step 250, the time since the last sanitation is monitored and if a threshold time since the last sanitation is met or exceeded, as seen in step 254, steam is injected at a first location 330E of FIG. 8B in step 260.
- the sanitation time threshold may vary from approximately one hour to several days, but is preferably 24 hours and preferably is controlled to occur at night time when the apparatus is unlikely to be in use.
- step 264 the temperature of the chamber (as increased by the injected steam) is measured until a thermister 136 in the lower area of the chamber registers a warm enough temperature 79.4°C (1 75 F) to indicate that all parts of the chamber have reached a temperature sufficient to kill bacterial organisms.
- the steam is provided at water shot and steam port 330E at the top of the chamber and the temperature is measured at the bottom of chamber 134 with thermister 136.
- FIG. 4A illustrates the apparatus with front door 124 opened.
- Product preparation chamber 134 also referred to as mixing chamber 134
- chamber 134 may be referred to as a mixing chamber, it should be understood, in certain of the described embodiments, that the product production involves boring through a frozen product, unlike what is typically referred to as a mixer.
- the front door opening of chamber 134 is sealed closed by inner chamber door seal 138 when front door 124 is in the closed position.
- Chamber 134 is also sealed when the bottom door 131 is closed. Bottom door 131 rotates about a hinge located at the side of the door and chamber in order to flip up and out of the way as the cup and holder are moved into the chamber.
- Bottom door 131 also incorporates a seal that ensures neither liquid nor steam escapes at the door locations.
- the doors 124 and 131 are sealed to the chamber when they are closed, effectively sealing the chamber during the steam sanitation cycle, thus allowing more quick and effective steam sanitation.
- Prior designs incorporated an open slot in the side wall of the chamber through which the cup holder mechanism traveled. While this open slot allowed a simpler and more vertically compact means of providing for cup travel up into the chamber, it stood as an impediment to effectively sealing the chamber for steaming, especially due to its location in the side of the chamber, and the tendency of steam to escape from the slot as it filled progressively from the top to the bottom of the chamber.
- a chamber vent hole 137A and connected chimney 137B are positioned adjacent the drain outlet, but still within the chamber.
- the chimney 137B extends upward to vent out the top of the apparatus, thus directing any moisture upward in the direction it naturally flows and out of the apparatus.
- a drain line 139 is also provided from the chamber in order to drain waste and rinse water from the chamber and out of the apparatus.
- This drain line is susceptible to growth of bacterial organisms which over time can grow and accumulate and clog the drain line. The bacteria may also migrate into the chamber, especially when the drain is clogged, which is especially problematic. This accumulation occurs most frequently at fittings in the drain line, which provide ready places for bacteria to grow. Therefore, the apparatus is provided with a flexible, bacteria resistant one piece extended drain line connected to the blending chamber outlet and running down and out through the back panel of the apparatus without any fittings. This line is provided with sufficient length to reach a drain proximate (within approximately 2 meters) to the installed location of the apparatus, all without any fittings.
- cup lid weight 130 is shown in a tilted position. Cup 112 and carriage 108 are shown at a lower position.
- FIG. 4B illustrates cup 112 partially in mixing chamber 134, and cup lid weight 130 in a level position. Please note that the cup lid weight 130 is tilted when not supported by the cup, but that in FIG. 4B it is depicted as level, e.g. with a bottom surface parallel to the plane of the rim of the cup, for illustrative purposes to show the cup entering the chamber. Note that the tilt angle of the cup lid weight will be changed and the cup lid weight will be moved by the cup as it makes contact with the lid weight and lifts it off its support pin (described later).
- Cup lid weight 130 is a solid polymer based structure weighing about 1.81 or more kg (4 or more pounds), for example 2.45 kg (5.4 pounds) in a preferred embodiment.
- Chamber 134 and cup lid weight 130 are preferably made of an unsaturated polyester in a thermoset process.
- the cup lid weight comprises a high density filler such as barium sulfate to create a high density and overall weight.
- the specific gravity of the cup lid weight is in the range of 2.5 to 3.5, for example 2.8.
- the surface of the chamber walls and the cup lid weight is not smooth but is rather purposefully fabricated with a texture configured to aid in the release of food particles.
- the surface texture for the chamber walls and the cup lid weight is best achieved by acid etching the thermoset plastic to create a surface roughness of approximately 0.5 ⁇ 10-6m - 2.0 ⁇ 10-6m (0.5-2.0 micron) diameter protrusions, which are approximately 1 ⁇ 10-6m - 4 ⁇ 10-6m (1-4 microns) high, and are spaced approximately every 5 ⁇ 10-6m - 15 ⁇ 10-6m (5-15 microns).
- the cup lid weight 130 in addition to acting as a lid or splash guard, aids in preventing the cup from spinning when the rotating blade bores into the frozen material.
- the cup and the cup holder of the carriage have interlocking male/female features.
- the weight of the cup lid weight provides a sufficient force to keep the mating surfaces of the interlocking features in contact with each other.
- U.S. Patent No. 6,041,961 entitled “CUP WITH ANTI-ROTATION MECHANISM” and published U.S. Patent application US2010/0108696 entitled “METHOD AND APPARATUS FOR ROTATIONALLY RESTRAINING A MIXING CONTAINER”.
- the cup lid weight also acts as a splash guard, keeping the blended food product within the cup during the boring and liquid injection phase.
- FIGS. 5A -7B illustrate the cup lid weight 130 and associated boring components.
- Boring motor 146 is coupled to drive shaft 142, at the end of which is boring blade 150.
- Cup lid weight 130 has an opening, through which drive shaft 142 passes.
- cup lid weight 130 may tilt about the axis of drive shaft 142. The ability to tilt allows greater access to the underside of the cup lid weight.
- the tilt angle is about 20-30 degrees and in one preferred embodiment is about 25 degrees.
- the stream can better reach the underside surface of the cup lid weight to dislodge food that may have been deposited upon the underside surface during blending because the underside of the cup lid weight is more exposed to the water stream and the water stream is less obstructed by the blending disc 150, which is located just below the cup lid weight.
- the water is provided at an angle 153 from the axis of shaft 142 so as to provide a direct path to and proper cleaning of the underside of the cup lid weight.
- Lower scour nozzle 330D ( FIG. 8C ) is located so as to achieve a delivery angle 153 of about 15 to 45 degrees.
- FIG. 6B is a cross section along line A-A of FIG. 6A .
- Cup lid weight 130 rests upon support pin 160 of (multi piece) drive shaft 142.
- the cup lid weight 130 is designed so that the center of gravity 154 is located above the support pin 160.
- the inner diameter of the hole within the cup lid weight 130 is about 50-100% larger than the outer diameter of drive shaft 142, so that the cup lid weight may rotate about the support pin and tilt with respect to the drive shaft.
- the center of gravity may also be below or at the level of the support pin, and the tilting may be achieved by the rotational force alone or means of a tilted support pin, as allowed by the gap in outer/inner diameter of the shaft and cup lid weight respectively.
- FIG 7B illustrates another cross section 90 degrees from that shown in FIG. 6B .
- the direction of tilting either clockwise or counterclockwise about support pin 160, as represented by arrows 155 is most clearly shown in FIG. 7B .
- tipping occurs randomly either clockwise or counterclockwise, thus improving the cleaning of the underside of the cup lid weight by more completely, randomly exposing all of the cup lid weight underside to the rinsing fluid from blending cycle to blending cycle.
- FIG. 8A touched upon earlier, is a plumbing diagram.
- Water input 300 is connected to a water supply line, which supplies water to accumulator 304 at the pressure of the incoming water supply.
- Rotary pump 308 increases the pressure and flow rate of the water as it is pumped from the accumulator through the flow meter 312 and valve manifold 316.
- the increase in water pressure over input water supply line pressure is approximately 344.5 - 689kPa (50-100 p.s.i.).
- the flow rate through flow meter 312 may be used by control circuitry to alter the running time, flow rate and/or output pressure of pump 308.
- the control circuitry also uses the flow meter to measure and dispense precise amounts of liquid appropriate for various tasks.
- a measured amount for a first size or consistency of milkshake may be different than for a second size or consistency.
- Amounts for scour nozzles and rotary nozzles are also measured by the flow meter. This improves upon prior designs utilizing an approximation of dispensed amounts (of e.g., water) based upon the elapsed time open of the valves, which is problematic when flow/pressure restrictions or variations arise.
- the valves of valve manifold 316 are activated by logic so as to supply one or more of: front rotary nozzle 330A; rear rotary nozzle 330B; upper scour nozzle 330C; lower scour nozzle 330D; and water shot and steam port 330E.
- Water passed to lower scour nozzle 330D is heated by scour heater 320.
- Water passed to water shot and steam port 330E is passed through steam heater 324.
- the heaters 320 and 324 may be discrete heaters and or may be different water passages through one heating element or core.
- steam heater 324 can serve as both a steam heater for steam sanitization of the apparatus and also can serve as the heater which heats water for addition to the milkshake during blending.
- the water can be maintained at the approximately 51.6°C (125 degree Fahrenheit) temperature desirable for addition to the milkshake, or when desired, steam can be created by running the heater at a temperature sufficiently high (approximately 107°C (225 degrees Fahrenheit)) to generate steam. Because these two desired conditions do not occur simultaneously, these two functions can be combined into one heater, reducing the necessary heating units as well as the associated plumbing and valves.
- FIGS. 8B and 8C illustrate the chamber 134 and the various water dispensing components 330.
- water shot nozzle and steam injection location 330E is located at the top of the blending chamber near the drive shaft and injects a shot of warm, e.g. approximately 5 1.6°C (125 degree Fahrenheit) water into the cup during the boring of the product. After each production cycle, warm water is sprayed by the scour nozzles 330C and 330D in order to rinse any food residue off the food contact surfaces while the tipped cup lid weight 130 is slowly rotated.
- warm water is sprayed by the scour nozzles 330C and 330D in order to rinse any food residue off the food contact surfaces while the tipped cup lid weight 130 is slowly rotated.
- the two rotary nozzles 330A and 330B are fired. A first nozzle is fired until the accumulator is nearly emptied, then the accumulator is refilled and the second nozzle is fired. This is to clear any splatters off of the chamber 134 walls. There are two nozzles to ensure there are no areas that are "shadowed" from both nozzles. With only one nozzle, this is difficult if not impossible.
- a telecommunications transceiver may be incorporated into the apparatus.
- the transceiver comprises a cellular modem that communicates over a "cellular" mobile telephone network, which eliminates any need for a wired connection.
- the transceiver comprises a wireless network or "wifi" modem operating under one or more of the 802.11 or other protocols.
- the modem may communicate with a remote monitoring facility to communicate various pertinent data about the apparatus. For example, any errors within the apparatus may be reported so that a technician can be sent to tend to the machine before the errors result in machine malfunction. For example, if the position verification system indicates that the belt has slipped, this condition may be reported and repaired. As another example, errors achieving necessary temperatures and pressures may be reported.
- a parameter that may be tracked and reported is motor current and/or time required to bore through a shake.
- a higher than normal motor current during shake preparation indicates that the freezer is colder than a baseline recommended temperature, or in other words too cold.
- a longer than usual elapsed time necessary to bore through the shake is also an indicator of an overly cold freezer, and similarly, a shorter than usual time may be indicative of a warmer than recommended freezer.
- Other parameters include but are not limited to the water pressure (as determined by the flow rate), cup presence, and line voltage supplied to the apparatus. Additionally, the sales volume of different sizes and types of products may be reported, and as a result inventory may be automatically restocked.
- the food preparation apparatus is configured to allow the monitoring facility or other remote entity to disable the apparatus if certain product parameters or quantities are outside of expected or contracted ranges.
- the communication means can also be used to update the content of the user interface screen for new product information, or to provide new blending programs or parameters to blend newly developed products.
Landscapes
- Engineering & Computer Science (AREA)
- Chemical & Material Sciences (AREA)
- Food Science & Technology (AREA)
- Life Sciences & Earth Sciences (AREA)
- Polymers & Plastics (AREA)
- Mechanical Engineering (AREA)
- Chemical Kinetics & Catalysis (AREA)
- Food-Manufacturing Devices (AREA)
- Confectionery (AREA)
- Refrigerator Housings (AREA)
- Table Devices Or Equipment (AREA)
Claims (9)
- Appareil de préparation d'aliments (100), comportant :une chambre de préparation d'aliments (134) ;un chariot (108) comportant un porte-gobelet (108A) agencé pour tenir un gobelet (112) contenant un aliment ;un moteur de position (172) agencé pour élever le chariot (108), le porte-gobelet (108A) et le gobelet (112) jusque dans la chambre de préparation d'aliments (134) depuis une position de départ et pour ramener le chariot (108), le porte-gobelet (108A) et le gobelet à la position de départ, et l'appareil de préparation d'aliments étant agencé pour maintenir le chariot (108) sur la position de départ à l'extérieur de la chambre de préparation d'aliments (134) en attendant qu'un gobelet soit placé dans le porte-gobelet (108A) par un utilisateur de l'appareil de préparation d'aliments (100), et caractérisé par :
un système agencé pour capter la taille d'un gobelet (112) qui est placé dans le porte-gobelet (108A) par l'utilisateur, le système comportant :
un moteur de position (172) ayant un codeur de position (176) et un ou plusieurs capteurs de taille de gobelet (164), dans lequel le système est configuré pour déterminer la taille du gobelet par indexation du codeur de position (176) afin de déterminer une position correspondante du chariot (108) et dans lequel la position du chariot est indexée quand lesdits un ou plusieurs capteurs de taille de gobelet (164) sont déclenchés pour déterminer la taille du gobelet. - Appareil de préparation d'aliments selon la revendication 1, dans lequel le système comporte un capteur de transmission de taille de gobelet et un capteur de réception de taille de gobelet, et est agencé pour capter la présence d'une partie supérieure du gobelet quand un faisceau allant du capteur de transmission de taille de gobelet au capteur de réception de taille de gobelet est interrompu.
- Appareil de préparation d'aliments selon la revendication 1, et configuré pour sélectionner une durée de creusage à la lame et une quantité d'eau à des fins de préparation de l'aliment en fonction de la taille déterminée du gobelet.
- Appareil de préparation d'aliments selon la revendication 2, dans lequel l'appareil est configuré pour sélectionner une vitesse de creusage à la lame en fonction de la taille déterminée du gobelet.
- Appareil de préparation d'aliments selon la revendication 1, dans lequel l'appareil est configuré pour recevoir une consistance sélectionnée de l'aliment en provenance d'un utilisateur et pour sélectionner la durée de creusage à la lame et/ou la quantité en fonction de la taille du gobelet et de la consistance sélectionnée de l'aliment.
- Appareil de préparation d'aliments selon la revendication 1, et configuré pour vérifier de manière redondante la position du chariot alors qu'il effectue une translation vers le haut et le bas au moyen d'un ou de plusieurs capteurs de position de chariot.
- Appareil de préparation d'aliments selon la revendication 1, dans lequel l'appareil est configuré pour interrompre un cycle de préparation de produit si la taille du gobelet ne correspond pas à une taille autorisée.
- Appareil de préparation d'aliments selon la revendication 1, et configuré pour signaler à un utilisateur que la taille du gobelet ne correspond pas à une taille autorisée.
- Appareil de préparation d'aliments selon la revendication 1, et configuré pour signaler à un dispositif informatique à distance par le biais d'une connexion de réseau que la taille du gobelet ne correspond pas à une taille autorisée.
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Application Number | Priority Date | Filing Date | Title |
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US25260609P | 2009-10-16 | 2009-10-16 | |
PCT/US2010/052241 WO2011046893A1 (fr) | 2009-10-16 | 2010-10-12 | Électronique d'appareil de préparation d'aliments surgelés du commerce |
Publications (4)
Publication Number | Publication Date |
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EP2446425A1 EP2446425A1 (fr) | 2012-05-02 |
EP2446425A4 EP2446425A4 (fr) | 2014-08-06 |
EP2446425B1 true EP2446425B1 (fr) | 2018-07-25 |
EP2446425B8 EP2446425B8 (fr) | 2022-07-20 |
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Application Number | Title | Priority Date | Filing Date |
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EP10823914.6A Active EP2445622B8 (fr) | 2009-10-16 | 2010-10-12 | Désinfection d'un appareil commercial de préparation d'aliments congelés |
EP10823913.8A Active EP2445621B1 (fr) | 2009-10-16 | 2010-10-12 | Appareil de préparation d'aliments congelés du commerce |
EP10823915.3A Active EP2446425B8 (fr) | 2009-10-16 | 2010-10-12 | Electronique pour un appareil commercial de préparation d'aliments congelés |
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Application Number | Title | Priority Date | Filing Date |
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EP10823914.6A Active EP2445622B8 (fr) | 2009-10-16 | 2010-10-12 | Désinfection d'un appareil commercial de préparation d'aliments congelés |
EP10823913.8A Active EP2445621B1 (fr) | 2009-10-16 | 2010-10-12 | Appareil de préparation d'aliments congelés du commerce |
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US (4) | US8763515B2 (fr) |
EP (3) | EP2445622B8 (fr) |
AU (1) | AU2010307042B2 (fr) |
CA (4) | CA2842468C (fr) |
ES (3) | ES2958411T3 (fr) |
WO (3) | WO2011046893A1 (fr) |
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